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结构修饰的槲皮素/异鼠李素糖苷对严重急性呼吸综合征冠状病毒2主蛋白酶的潜在抑制特性;分子对接和动力学模拟策略

Potential inhibitory properties of structurally modified quercetin/isohamnetin glucosides against SARS-CoV-2 Mpro; molecular docking and dynamics simulation strategies.

作者信息

Adegbola Peter Ifeoluwa, Fadahunsi Olumide Samuel, Ogunjinmi Oluwasayo Esther, Adegbola Aanuoluwa Eunice, Ojeniyi Fiyinfoluwa Demilade, Adesanya Adetayo, Olagoke Emmanuel, Adisa Ayobami Damilare, Ehigie Adeola Folasade, Adetutu Adewale, Semire Banjo

机构信息

Department of Biochemistry, Faculty of Basic Medical Sciences, Ladoke Akintola University of Technology, Ogbomoso, Nigeria.

Department of Industrial Chemistry, Faculty of Natural and Applied Sciences, First Technical University, Ibadan, Nigeria.

出版信息

Inform Med Unlocked. 2023;37:101167. doi: 10.1016/j.imu.2023.101167. Epub 2023 Jan 13.

Abstract

Concerned organizations and individuals are fully engaged in seeking appropriate measures towards managing Severe Acute Respiratory Syndrome Coronavirus 2 (SAR-CoV-2) infection because of the unprecedented economic and health impact. SAR-CoV-2 Main protease (SARS-CoV-2 Mpro) is unique to the survival and viability of the virus. Therefore, inhibition of Mpro can block the viral propagation. Thirty (30) derivatives were built by changing the glucosides in the Meta and para position of quercetin and isohamnetin. Molecular docking analysis was used for the screening of the compounds. Dynamics simulation was performed to assess the stability of the best pose docked complex. Molecular mechanics binding free energy calculation was done by Molecular Mechanics/Poisson-Boltzmann Surface Area (MMPBSA). Overall analysis showed that the compounds are allosteric inhibitors of SARS-CoV-2 Mpro. Dynamic simulation analysis established the stability of Mpro-ISM-1, Mpro-ISD-3, Mpro-IST-2, Mpro-QM-2, and Mpro-QD-6 complexes with a maximum of 7 hydrogen bonds involved in their interaction. The MMPBSA binding free energies for ISM-1, ISD-3, IST-2, QM-2, and QD-6 were -92.47 ± 9.06, -222.27 ± 32.5, 180.72 ± 47.92, 156.46 ± 49.88 and -93.52 ± 48.75 kcal/mol respectively. All the compounds showed good pharmacokinetic properties, while only ISM-1 inhibits hERG and might be cardio-toxic. Observations in this study established that the glucoside position indeed influenced the affinity for SARS-CoV-2 Mpro. The study also suggested the potentials of ISD-3, QM-2 and QD-6 as potent inhibitors of the main protease, further experimental and clinical studies are however necessary to validate and establish the need for further drug development processes. Therefore, future studies will be on the chemical synthesis of the compounds and investigation of the inhibition of SARS-CoV-2.

摘要

由于前所未有的经济和健康影响,相关组织和个人全力投入寻求管理严重急性呼吸综合征冠状病毒2(SARS-CoV-2)感染的适当措施。SARS-CoV-2主要蛋白酶(SARS-CoV-2 Mpro)对于病毒的存活和活性至关重要。因此,抑制Mpro可阻断病毒传播。通过改变槲皮素和异鼠李素间位和对位的糖苷构建了30种衍生物。采用分子对接分析筛选这些化合物。进行动力学模拟以评估最佳对接构象复合物的稳定性。通过分子力学/泊松-玻尔兹曼表面积(MMPBSA)计算分子力学结合自由能。总体分析表明这些化合物是SARS-CoV-2 Mpro的变构抑制剂。动力学模拟分析确定了Mpro-ISM-1、Mpro-ISD-3、Mpro-IST-2、Mpro-QM-2和Mpro-QD-6复合物的稳定性,其相互作用中最多涉及7个氢键。ISM-1、ISD-3、IST-2、QM-2和QD-6的MMPBSA结合自由能分别为-92.47±9.06、-222.27±32.5、180.72±47.92、156.46±49.88和-93.52±48.75 kcal/mol。所有化合物均表现出良好的药代动力学性质,而只有ISM-1抑制人乙醚-a-去极化钾通道(hERG),可能具有心脏毒性。本研究中的观察结果表明糖苷位置确实影响对SARS-CoV-2 Mpro的亲和力。该研究还表明ISD-3、QM-2和QD-6作为主要蛋白酶的有效抑制剂的潜力,然而需要进一步的实验和临床研究来验证并确定进一步药物开发过程的必要性。因此,未来的研究将集中在这些化合物的化学合成以及对SARS-CoV-2抑制作用的研究上。

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